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Since there is no .resize() member function in C++ std::map I was wondering, how one can get a std::map with at most n elements.

The obvious solution is to create a loop from 0 to n and use the nth iterator as the first parameter for std::erase().

I was wondering if there is any solution that does not need the loop (at least not in my user code) and is more "the STL way to go".

thanks, Norbert

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1  
Hmm.. I'd say using an iterator loop is the STL way to go, isn't it? –  schnaader Nov 27 '09 at 15:04
2  
There is no std::erase. Use std::map<Key,Val,Pred,Alloc>::erase() –  Alexey Malistov Nov 27 '09 at 15:48

5 Answers 5

up vote 11 down vote accepted

You can use std::advance( iter, numberofsteps ) for that.

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+1 - didn't know that - nice one. –  schnaader Nov 27 '09 at 15:13

Universal solution for almost any container, such as std::list, std::map, boost::multi_index. You must check the size of your map only.

template<class It>
It myadvance(It it, size_t n) {
   std::advance(it, n);
   return it;
}

template<class Cont>
void resize_container(Cont & cont, size_t n) {
    cont.erase(myadvance(cont.begin(), std::min(n, cont.size())), 
                 cont.end());
}
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it's void std::advance(), so this did not compile. –  Norbert Nov 27 '09 at 15:24
    
Right. I fixed. –  Alexey Malistov Nov 27 '09 at 15:26
    
+1, but if you were tidying this up for release you'd have to make up your mind what concept resize_container operates on. The function and template parameter names suggests any container. The function parameter name suggests any map. As written I think it will in fact work on any Sequence or Associative Container, which unfortunately means its domain is a polyphyletic group in the C++ taxonomy. –  Steve Jessop Nov 27 '09 at 15:53
    
Does that sound pretentious, at all? ;-) I just mean that "Erasable" or whatever isn't a natural part of the way C++ containers are classified, because Sequence and Associative Container each have their own almost but not quite compatible erase functions. –  Steve Jessop Nov 27 '09 at 16:02

A std::map is not a list. There are no "first n" elements.

BTW: Iterators become invalid if the container is changed.

If you really need a smaller map you could iterate though it and add all elements up to the n-th into a new map.

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2  
Well, the elements are sorted by their key aren't they? –  Nailer Nov 27 '09 at 15:06
    
@Nailer: Nice, I didn't know that. This link confirms: cplusplus.com/reference/stl/map –  ya23 Nov 27 '09 at 15:29
1  
Yes, they are. But a map is "most likely implemented as a (balanced) tree of nodes" (quote "The C++ programming language", Bjarne Stroustrup), not a list. So mymap[n] doesn't make any sense. –  EricSchaefer Nov 27 '09 at 15:32
    
According to sgi's documentation, std::map's iterators don't become invalid after the container is changed: "Map has the important property that inserting a new element into a map does not invalidate iterators that point to existing elements. Erasing an element from a map also does not invalidate any iterators, except, of course, for iterators that actually point to the element that is being erased. " -- sgi.com/tech/stl/Map.html –  Eld Nov 27 '09 at 16:10
    
the iterator invalidation (or not) is irrelevant here. We will use map.erase(iterator1, iterator2), any 'iterator invalidation' problem would make this function impossible to use, and we assume that STL functions are not impossible to use ;-) –  Alink Nov 27 '09 at 16:27

The correct way for this is to use std::advance. But here is a funny (slow) way allowing to 'use resize on map'. More generally, this kind of trick can be used for other things working on vector but not on map.

map<K,V> m; //your map
vector< pair<K,V> > v(m.begin(), m.end());
v.resize(n);
m = map<K,V>(v.begin(),v.end());
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Why would you want to resize a map?

The elements in a map aren't stored in any order - the first 'n' doesn't really mean anything

edit:
Interestingly std::map does have an order, not sure how useful this concept is.
Are the entries in the same sort order as the keys?
What does that mean? If you have Names keyed by SSN does that mean the names are stored in SSN numeric order?

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Aren't the elements ordered by key? –  Andreas Brinck Nov 27 '09 at 15:07
    
Not in the way you think, the elements are in some order in memory. There is a hash algorithm that converts the key into an index. But the elements for key1 and key2 aren't necessarily next to each other. –  Martin Beckett Nov 27 '09 at 15:13
2  
@mgb No, that would be a hash table. An std::map is a binary search tree (usually a red-black tree to be specific). The elements in an std::map are therefore stored in a way that makes iterating in order easy and fast. –  Adhemar Nov 27 '09 at 15:17
    
I was thinking the same as Andreas Brinck. I did store some results in a map and wanted to get out the n elements, that fit best. That's why I'd throw away the rest. (So in fact, I would not resize, i would shrink the map.) But if I get you right, I'll get a my n results, but they are not guaranteed to be the n with the smallest key value? –  Norbert Nov 27 '09 at 15:19
    
@Adhemar: My post came too late. Thank you for clarifying that. –  Norbert Nov 27 '09 at 15:20

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